What is the difference between rewriting and overloading in java
Oct 16, 2020 pm 01:42 PM
Difference: Rewriting is when a subclass rewrites the implementation process of a method that allows access to the parent class. The method name and parameter list are the same, and the return value and formal parameters cannot be changed. Overloading is when multiple functions of the same name with different number or types of parameters exist in the same class at the same time, with the same method name and different parameter lists.
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##Q: What are Java overloading and rewriting? What's the difference?
Answer:
Overload (Overload) is a means for a class to process different types of data in a unified way. Functions with the same name with different number or types of parameters (the return value type can be arbitrary, and the return type cannot be used as the criterion for distinguishing overloaded functions) exist in the same class at the same time, which is polymorphism in a class A manifestation of polymorphism (when calling a method, determines which method to use by passing different number of parameters and parameter types ).
(Override) is the parent class and The essence of polymorphism between subclasses is to redefine the functions of the parent class. If a method defined in a subclass has the same name and parameters as its parent class, the method will be rewritten, but the access of the subclass function The modification permission cannot be less than that of the parent class; if a method in the subclass has the same method name, return type and parameter list as a method in the parent class, the new method will overwrite the original method. If the original method in the parent class is required The method can use the super keyword.
** Overloading rules: ** must have different parameter lists; can have different return types; can have different access modifiers; can throw different exceptions.
Rewriting rules:The parameter list must be exactly the same as the overridden method, otherwise it cannot be called an override; the return type must always be the same as the overridden method , otherwise it cannot be called an override; The access modifier limit must be greater than or equal to the access modifier of the overridden method; the overridden method must not throw a new checked exception or be broader than the overridden method declaration Checked exceptions, for example, the parent class method declares a checked exception IOException. When overriding this method, you cannot throw Exception. You can only throw subclass exceptions of IOException, and you can throw unchecked exceptions.
Overloading and rewriting are different manifestations of Java polymorphism.
Rewriting is a manifestation of polymorphism between the parent class and the subclass, which works at runtime (dynamic polymorphism, such as dynamic binding)
Overloading is a manifestation of polymorphism in a class, which takes effect at compile time (static polymorphism, such as static binding).
Q: Can Java constructors be overridden and overloaded? Answer:
Overriding is a method in which a subclass method overrides a parent class method. The overridden method name remains unchanged, and the class constructor method name must be consistent with the class name. Assuming that if the construction method of the parent class can be overridden by the subclass, the class name of the subclass must be consistent with the class name of the parent class, soJava's construction method
cannot be overridden . The overloading is for the same one, so the construction method can be overloaded .
public?class?Demo?{
????public?boolean?equals(?Demo?other)?{
????????System.out.println("use?Demo?equals."?);
????????return?true;????}
????public?static?void?main(String[]?args)?{????
????Object?o1?=new?Demo?();
????Object?o2?=new?Demo?();????????
????Demo?o3?=new?Demo?();
????Demo?o4?=new?Demo?();
???if?(o1.equals(o2))?{
????????????System.out.println("o1?is?equal?with?o2.");
????????}
???if(o3.equals(o4))?{?????????????
????????????System.out.println("o3?is?equal?with?o4.");
????????}
????}} Answer: The results of the above program are as follows.
use?Demo?equals. o3?is?equal?with?o4.Because the public boolean equals(Demo other) method in the Demo class does not override the public boolean equals(Object obj) method in the Object class, the reason is that it violates the parameter rules, one of which is the Demo type The other one is of type Object, so these two methods are in an overloading relationship (occurring at compile time) rather than an overriding relationship;
So when o1.equals(o2) is called, o2 is an Object type parameter, in fact The public boolean equals(Object obj) method
in the Object class is called, because at compile time o1 and o2 are both Object types, and the equals method of the Object class returns false by comparing the memory address. ;When o3.equals(o4) is called, the equals(Demo other) method in the Demo class is actually called. Because o3 and o4 are both of Demo type at compile time, the above printing is there.
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